首页> 外文会议>International Work-Conference on Artificial Neural Networks(IWANN 2005); 20050608-10; Barcelona(ES) >Crack Detection in Wooden Pallets Using the Wavelet Transform of the Histogram of Connected Elements
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Crack Detection in Wooden Pallets Using the Wavelet Transform of the Histogram of Connected Elements

机译:利用连通元直方图的小波变换检测木托盘中的裂纹

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The paper presents the application of the wavelet transform of the frequency histogram of connected elements to the detection of very thin cracks in used pallets. First, the paper presents this novel concept and introduces the parameters that define a connected element, showing that the conventional grayscale intensity histogram of a digital image is a particular case of the histogram of connected elements. Then, the discriminant capability of the wavelet transform of this generalized histogram is analyzed. In particular, the information conveyed by the histogram of connected elements is exploited to detect very thin cracks in used pallets. An artificial neural network classifier to discriminate sound wood from defective wood with very thin cracks has been designed. The exhaustive experimental test carried out with numerous boards of used pallets has validated the proposed method, in particular its remarkably low ratio of false alarms.
机译:本文介绍了连接元素的频率直方图的小波变换在检测使用过的托盘中非常细小的裂缝中的应用。首先,本文介绍了这个新颖的概念,并介绍了定义连接元素的参数,表明传统的数字图像灰度强度直方图是连接元素直方图的特殊情况。然后,分析了该广义直方图的小波变换的判别能力。特别是,通过连接元素的直方图传达的信息可用于检测用过的托盘中非常细小的裂缝。已经设计了一种人工神经网络分类器,用于将有声木材与具有极细裂缝的有缺陷木材区分开。用大量用过的托盘板进行的详尽的实验测试已经验证了该方法,特别是其误报率极低。

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